[1] 张毅,韩玉娥,张银乐,等. PEG-6000模拟干旱胁迫下3个青稞品种的萌发特性及抗旱性评价[J]. 江苏农业科学,2019,47(15):139-142 [2] 田莉华,周青平,王加亭,等. 青藏高原草地畜牧业生产现状、问题及对策[J]. 西南民族大学学报(自然科学版),2016,42(2):119-126 [3] 黄文洁. 青藏高原高寒草地植被物候及其对气候变化的响应[D]. 兰州:兰州大学,2019:4-6 [4] 雷玉娟,马占胜,管雪强. 稳定性同位素在植物次生代谢中的研究进展[J]. 中国农学通报,2019,35(29):129-133 [5] 门玉倩. 干旱胁迫对防风幼苗生长、生理及次生代谢产物的影响[D]. 呼和浩特:内蒙古大学,2018:3 [6] 王彤彤. 土壤干旱对半夏次生代谢物积累及其生长的影响[D]. 杭州:浙江理工大学,2018:49-50 [7] 靳鹏博. 遮阴对丹参生长和次生代谢物含量的影响[D]. 杨凌:西北农林科技大学,2017:52-53 [8] 苏贝贝. UV-B辐射对颠茄生理特性及次生代谢产物含量的影响[D]. 重庆:西南大学,2016:40-41 [9] 马月花,郭晓瑞,杨楠,等. 黄芪幼苗对镉胁迫的生理响应机制[J]. 植物研究,2019,39(4):497-504 [10] Ahmed I M,Nadira U A,Bibi N,et al. Secondary Metabolism and Antioxidants Are Involved in the Tolerance to Drought and Salinity,Separately and Combined,in Tibetan Wild Barley[J]. Environmental & Experimental Botany,2015,111:1-12 [11] 张丹,任洁,刘红梅,等. 干旱胁迫对红松主要次生代谢产物的含量及其DPPH清除能力的影响[J]. 植物研究,2016,36(4):542-548 [12] Zahir A,Abbasi B H,Adil M,et al. Synergistic Effects of Drought Stress and Photoperiods on Phenology and Secondary Metabolism Ofsilybum Marianum[J]. Applied Biochemistry & Biotechnology,2014,174(2):693-707 [13] 金梦. 干旱胁迫对黄瓜幼苗次生代谢物质含量及相关酶活性的影响[D]. 合肥:安徽农业大学,2017:18-20 [14] 付艺峰. 老化老芒麦种质遗传完整性研究[D]. 呼和浩特:内蒙古农业大学,2015:1-2 [15] 鄢家俊. 青藏高原老芒麦种质资源遗传多样性及优异种质筛选[D]. 成都:四川农业大学,2009:7-8 [16] 张晨妮,周青平,颜红波,等. PEG对老芒麦种质材料萌发期抗旱性影响的研究[J]. 种子,2010,27(1):41-44 [17] 王传旗,徐雅梅,梁莎,等. 西藏野生老芒麦种子萌发对温度和水分的响应[J]. 作物杂志,2017(6):165-169 [18] Lyubushkina,I.V.,Grabelnych O. I.,Pavlovskaya N. S.. The Role of Mitochondria in Response of Wild Grass Elymus Sibiricus L. Seedlings to Temperature Stress,Water Deficiency and Hydrogen Peroxide Exposure[J]. Journal of Stress Physiology & Biochemistry,2011,7(4):97-112 [19] 闫天芳,苗彦军,王向涛,等. 干旱胁迫对西藏4份野生披碱草属牧草幼苗生理指标的影响[J]. 草地学报,2017,25(6):1333-1339 [20] Soleimannejad Zahra,Abdolzadeh Ahmad,Sadeghipour Hamid-Reza. Beneficial Effects of Silicon Application in Alleviating Salinity Stress in Halophytic Puccinellia Distans Plants[J]. Springer Netherlands,2019,11(2):1001-1010 [21] 吴淼,刘信宝,丁立人,等. PEG模拟干旱胁迫下硅对紫花苜蓿萌发及生理特性的影响[J]. 草地学报,2017,25(6):1258-1264 [22] 钟华,董洁,郭晋梅,等. 不同白羊草居群对干旱胁迫的生理响应及抗旱性评价[J]. 草地学报,2018,26(1):195-202 [23] 季杨,张新全,彭燕,等. 干旱胁迫对鸭茅幼苗根系生长及光合特性的影响[J]. 应用生态学报,2013,24(10):57-63 [24] Ibrahim L.,Proe M.F.,Cameron A.D. Interactive effects of nitrogen and water availabilities on gas exchange and whole-plant carbon allocation in poplar[J]. Tree Physiology,1998,18(7):481-487 [25] 鲁松. 干旱胁迫对植物生长及其生理的影响[J]. 江苏林业科技,2012,39(4):51-54 [26] 梁建萍,贾小云,刘亚令,等. 干旱胁迫对蒙古黄芪生长及根部次生代谢物含量的影响[J]. 生态学报,2016(14):4415-4422 [27] 张宇. 干旱胁迫对柴胡生长及有效成分的影响[D]. 杨凌:西北农林科技大学,2016:2-3 [28] 王玲平,周生茂,戴丹丽,等. 植物酚类物质研究进展[J]. 浙江农业学报,2010,22(5):696-701 [29] Haifa A. Alhaithloul,Mona H. Soliman,Keshav Lalit Ameta,et al. Changes in Ecophysiology,Osmolytes,and Secondary Metabolites of the Medicinal Plants of Mentha Piperita and Catharanthus Roseus Subjected to Drought and Heat Stress[J]. Biomolecules,2019,10(1):21 [30] 阎秀峰,王洋,李一蒙. 植物次生代谢及其与环境的关系[J]. 生态学报,2007(6):2554-2562 [31] Tscharntke T,Thiessen S,Dolch R,et al. Herbivory,Induced Resistance,and Interplant Signal Transfer in Alnus Glutinosa[J]. Biochemical Systematics & Ecology,2001,29(10):1025-1047 [32] 张彦妮,李博,何淼. PEG干旱胁迫对大花飞燕草幼苗生理特性的影响[J]. 草业科学,2014,31(3):446-450 [33] 李妍,宋凯旋,赵静,等. 聚乙二醇(PEG)模拟干旱胁迫对三叶草生长及抗氧化酶活性的影响[J]. 北方园艺,2019(11):92-96 [34] 郝岗平,杜希华,史仁玖. 干旱胁迫下外源一氧化氮促进银杏可溶性糖、脯氨酸和次生代谢产物合成[J]. 植物生理与分子生物学学报,2007(6):499-506 [35] Xie D Y,Shashi B. Sharma,Nancy L. Paiva,et al. Role of Anthocyanidin Reductase,Encoded By Banyuls in Plant Flavonoid Biosynthesis[J]. Science,2003,299(5605):396-399 [36] 金丽萍,崔世茂,杜金伟,等. 干旱胁迫对不同生态条件下蒙古扁桃叶片PAL和C4H活性的影响[J]. 华北农学报,2009,24(5):122-126 [37] Ramirez Tortosa C,Andersen M,Cabrita L,et al. Anthocyanin-rich Extract Decreases Indices of Lipid Peroxidation and Dna Damage in Vitamin E-depleted Rats[J]. Free Radical Biology & Medicine,2001,31(9):1033-1037 [38] 吴建华. 冷蒿对干旱胁迫适应机制的研究[D]. 呼和浩特:内蒙古农业大学,2009:26 [39] 李捷,崔永涛,柏延文,等. 两种枸杞对干旱胁迫的生理响应及抗旱性评价[J]. 甘肃农业大学学报,2019,54(5):79-87,99 [40] 平琴,徐胜,陈玮,等. 臭氧浓度升高对坪用高羊茅生长、亚细胞结构及活性氧代谢的影响[J]. 应用生态学报,2017,28(12):3862-3870 [41] Gharibi S,Tabatabaei B E S,Saeidi G,et al. The Effect of Drought Stress on Polyphenolic Compounds and Expression of Flavonoid Biosynthesis Related Genes in Achillea Pachycephala Rech.f[J]. Elsevier Ltd,2019,162:90-98 [42] Dicko M H,Gruppen H,Barro C,et al. Impact of Phenolic Compounds and Related Enzymes in Sorghum Varieties for Resistance and Susceptibility to Biotic and Abiotic Stresses[J]. Springer-verlag,2005,31(11):2671-2688 [43] Castellarin S D,Pfeiffer A,Sivilotti P,et al. Transcriptional Regulation of Anthocyanin Biosynthesis in Ripening Fruits of Grapevine Under Seasonal Water Deficit[J]. Plant,Cell &Environment,2007,30(11):1381-1399 [44] 王冰,程宪国. 干旱、高盐及低温胁迫下植物生理及转录因子的应答调控[J]. 植物营养与肥料学报,2017,23(6):1565-1574 |